Transformation of structural-phase states in rail head at extremely long-term operation

R. V. Kuznetsov, V. Kormyshev, V. Gromov, Y. Ivanov, Yu. A. Shlyarova
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Abstract

Quantitative transformations of the structure at a depth of 0, 2, 5, 10 mm along the central and symmetry axis of the fillet of long differentially quenched rails head after extremely long-term operation (passed tonnage of 1770 mln. gross tons) were identified at macro-, micro- and nanoscale levels by methods of optical, scanning and transmission electron diffraction microscopy. At a macroscale level, the numerous shallow parallel cracks of contact fatigue are detected on the surface of working fillet, and on the surface of inoperative fillet there are only small spallings. The lateral wear of the rail was 2.5 mm and the vertical wear was 2 mm. Microstructure of the rail head metal corresponds to the requirements of standards and specifications of the Russian Railways. At microscale level, the transformation of cementite plates was established by cutting it with moving dislocations and dissolving with the escape of carbon to the dislocation lines, low- and high-angle boundaries. A decrease in microstructure dispersion is noted with a distance from the tread surface. At the nanoscale level, subgrain structure formed in the surface layers (subgrain size 110 – 200 μm) contains nanosized cementite particles (25 – 60 nm) localized at the joints and along the subgrain boundaries. It is supposed that this type of structure is formed as a result of dynamic recrystallization under megaplastic deformation in the process of extremely long-term operation of rails. The content of subgrain structure in the fillet layer is five-fold higher than that in surface layer of the tread surface. It was established that during operation, the transformation of lamellar perlite along the central axis of the head proceeds more slowly than along the symmetry axis of the fillet.
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超长运行时轨头结构相态的变化
长差动淬火钢轨头圆角中心和对称轴0、2、5、10 mm深度处的定量结构变化(通过吨位17.7亿)。通过光学、扫描和透射电子衍射显微镜等方法,在宏观、微观和纳米尺度上对其进行了鉴定。在宏观尺度上,工作圆角表面存在大量的浅平行接触疲劳裂纹,而失效圆角表面仅存在少量剥落。钢轨横向磨损2.5 mm,纵向磨损2 mm。钢轨头金属的显微结构符合俄罗斯铁路标准和规范的要求。在微观尺度上,渗碳体板的转变是通过移动位错切割和碳逸出到位错线、低角和高角边界而形成的。与胎面距离越远,微结构弥散度越低。在纳米尺度上,形成于表层(亚晶尺寸为110 ~ 200 μm)的亚晶结构中含有纳米渗碳体颗粒(25 ~ 60 nm),分布在接头和亚晶界处。认为这种结构是钢轨在超长运行过程中,在超塑性变形作用下动态再结晶的结果。圆角层亚粒结构的含量是胎面表层亚粒结构含量的5倍。结果表明,在操作过程中,层状珍珠岩沿头部中轴线的转变比沿圆角对称轴的转变慢。
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